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I have two arrays, one is very large (more than million entries) and other array is small (less than 1000 entries), what would be the best approach to find maximum number out of all entries in arrays ?

Thanks.

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Iterate over each array, keeping track of the maximum so far. Is there a trick to this question? You have to at least look at every value to find the maximum. –  hughdbrown Aug 29 '09 at 3:24
1  
I must say, it is remarkable how many variations of the user-name "rachel" have been appearing lately. :) On a more serious note, here is a very-much related question: stackoverflow.com/questions/1042507/… –  agorenst Aug 29 '09 at 3:25
    
@Agor - Three users named 'Rachel' have signed up today... odd. –  Charlie Salts Aug 29 '09 at 3:38
    
Ah, it's homework. I didn't realize that at first. –  hughdbrown Aug 29 '09 at 3:51
    
No evidence that this is homework - I'm untagging it. –  Isaac Waller Aug 30 '09 at 5:29

4 Answers 4

up vote 12 down vote accepted

If the arrays are unsorted then you must do a linear search to find the largest value in each. If the arrays are sorted then simply take the first or last element from each array (depending on the sort order).

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If you think about it, if you want to find the highest value, you have to check all the values. There's no way around that (unless the arrays are sorted, which is easy - just take the last (or first if sorted descendingly) of each array and take the biggest). Example:

int highest = array1[i]; // note: don't do this if the array could be empty
for(int i = 0; i < array1.length; i++) {
    if(highest<array1[i]) highest = array1[i];
}
for(int i = 0; i < array2.length; i++) {
    if(highest<array2[i]) highest = array2[i];
}  
// highest is now the highest
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If your arrays are already sorted, you can just jump to the end with the maximum.

If your arrays are not sorted, you'll have to run over the entire list, tracking the largest value seen so far.

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We can reduce your number of operations or comparison to 3(n/2-2). from 2n(n for finding maximum number using linear search and n for minimum). Let say we have an array of elements [1,9,8,7,4,5,1,4,7,8,1,6]. Set the first element to Max=1 and the next to Min=9, now take simultaneously next two elements of the array compare them and then compare with Max and Min. So one iteration require only 3 comparison but the array is reduce to n/2. Thus the total number of comparison will be 3(n/2-2). Example:

Max=arr[1];

Min=arr[2];

for(int i=3; i< arr.length;i=i+2)

{

if(arr[i]>arr[i+1]) 

{

if(Max < arr[i])

Max=arr[i];

if(Min > arr[i+1])

Min=arr[i+1];

}

else 

{

if(Max < arr[i+1])

Max=arr[i+1];

if(Min > arr[i])

Min=arr[i];

}

}
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